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采用硅跳跃式电荷耦合器件实现单电子和单光子灵敏度

Single-Electron and Single-Photon Sensitivity with a Silicon Skipper CCD.

作者信息

Tiffenberg Javier, Sofo-Haro Miguel, Drlica-Wagner Alex, Essig Rouven, Guardincerri Yann, Holland Steve, Volansky Tomer, Yu Tien-Tien

机构信息

Fermi National Accelerator Laboratory, P.O. Box 500, Batavia, Illinois 60510, USA.

Centro Atómico Bariloche, CNEA/CONICET/IB, Bariloche R8402AGP, Argentina.

出版信息

Phys Rev Lett. 2017 Sep 29;119(13):131802. doi: 10.1103/PhysRevLett.119.131802. Epub 2017 Sep 26.

Abstract

We have developed ultralow-noise electronics in combination with repetitive, nondestructive readout of a thick, fully depleted charge-coupled device (CCD) to achieve an unprecedented noise level of 0.068  e^{-} rms/pixel. This is the first time that discrete subelectron readout noise has been achieved reproducible over millions of pixels on a stable, large-area detector. This enables the contemporaneous, discrete, and quantized measurement of charge in pixels, irrespective of whether they contain zero electrons or thousands of electrons. Thus, the resulting CCD detector is an ultra-sensitive calorimeter. It is also capable of counting single photons in the optical and near-infrared regime. Implementing this innovative non-destructive readout system has a negligible impact on CCD design and fabrication, and there are nearly immediate scientific applications. As a particle detector, this CCD will have unprecedented sensitivity to low-mass dark matter particles and coherent neutrino-nucleus scattering, while future astronomical applications may include direct imaging and spectroscopy of exoplanets.

摘要

我们开发了超低噪声电子设备,并结合了对厚的、完全耗尽的电荷耦合器件(CCD)进行重复、无损读出,以实现前所未有的噪声水平,即均方根噪声为0.068电子/像素。这是首次在稳定的大面积探测器上,在数百万像素上实现了可重复的离散亚电子读出噪声。这使得能够对像素中的电荷进行同步、离散和量化测量,无论像素中包含零个电子还是数千个电子。因此,所得的CCD探测器是一种超灵敏量热计。它还能够在光学和近红外波段对单光子进行计数。实施这种创新的无损读出系统对CCD的设计和制造影响可忽略不计,并且几乎有立竿见影的科学应用。作为粒子探测器,这种CCD对低质量暗物质粒子和相干中微子 - 原子核散射将具有前所未有的灵敏度,而未来的天文应用可能包括系外行星的直接成像和光谱分析。

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